可重构电子纺织折纸天线的多物理场建模与实验验证

Hamil Shah, Abdullahi Inshaar, Chengzhe Zou, Shreyas Chaudhari, Saad Alharbi, A. Kiourti, R. Harne
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引用次数: 1

摘要

与作用于拓扑固定天线的数字转向方法相比,物理变形机制正在成为适应天线射频(RF)特性的引人注目且简单的方法。物理可重构性的概念也实现了特殊的功能,如可部署和变形的天线阵列,可以服务于多种功能,并允许紧凑的运输。然而,新兴概念缺乏对有效方法的广泛理解,无法将保形、导电架构与高遵从性可折叠框架集成在一起。为了探索这种电气需求和机械需求可能冲突的基本接口,本研究引入了一类新的基于折纸的镶嵌天线,其射频特性通过天线形状的物理重新配置进行自调谐。电子纺织材料用于在保持导电性的同时允许大的天线形状变化。偶极子和贴片天线被认为是传统的天线平台,在此基础上创新电子纺织品折纸概念。多物理场建模工作确立了可折叠天线几何形状对射频特性广泛定制的有效性。概念验证天线的实验证实,通过重新配置电子纺织品折纸表面,可以实现波辐射特性的大适应性。研究结果表明,电子纺织天线可以集成到服装和机械结构中,为广泛的应用提供了一种非侵入性的量化变形的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiphysics Modeling and Experimental Validation of Reconfigurable, E-Textile Origami Antennas
Physical deformation mechanisms are emerging as compelling and simple ways to adapt radio frequency (RF) characteristics of antennas in contrast to digital steering approaches acting on topologically fixed antennas. Concepts of physical reconfigurability also enable exceptional capabilities such as deployable and morphing antenna arrays that serve multiple functions and permit compact transport with ease. Yet, the emergent concepts lack broad understanding of effective approaches to integrate conformal, electrically conductive architectures with high-compliance foldable frameworks. To explore this essential interface where electrical demands and mechanical requirements may conflict, this research introduces a new class of origami-based tessellated antennas whose RF characteristics are self-tuned by physical reconfiguration of the antenna shape. E-textile materials are used to permit large antenna shape change while maintaining electrical conductivity. Dipole and patch antennas are considered as conventional antenna platforms upon which to innovate with the e-textile origami concept. Multiphysics modeling efforts establish the efficacy of foldable antenna geometries for broad tailoring of the RF characteristics. Experiments with proof-of-concept antennas confirm the large adaptability of wave radiation properties enabled by the reconfiguration of the e-textile origami surfaces. The results suggest that e-textile antennas can be integrated into clothing and mechanical structures, providing a non-invasive way of quantifying deformation for a wide range of applications.
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